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Oxygen-controlled bottom-up mask-projection stereolithography for ceramic 3D printing

机译:用于陶瓷3D印刷的氧气控制的自下罩面罩投影立体光刻

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To fabricate ceramic components with a complex structure, the bottom-up mask-projection stereolithography (MP-SL) technique is currently employed. However, a fracture or a defect is normally found because of the large separation force formed between the newly cured layer and the bottom surface of the slurry tank. Hence, to overcome this issue, an oxygen-permeable layer is integrated into the conventional MP-SL system for printing a beta-TCP ceramic slurry in this study. The system is based on the fact that oxygen inhibits the photopolymerization process by consuming free radicals. The effects of the light exposure time and oxygen concentration on the curing depth and thickness of the oxygen-inhibition layer were investigated. Moreover, the separation forces were indirectly determined using a weight sensor. The results show that the oxygen-inhibition layer helped in reducing the separation force by 60% compared to that wherein oxygen is not employed. The solid loading could be increased by up to 44 vol% and the printable cross-sectional area by 5 times. In summary, the proposed oxygen-controlled bottom-up MP-SL technique helped in improving the ceramic printing efficiency and product quality.
机译:为了制造具有复杂结构的陶瓷部件,目前采用自下而上掩模投影立体光刻(MP-SL)技术。然而,通常发现裂缝或缺陷是因为在新固化层和浆料罐的底表面之间形成的大分离力。因此,为了克服该问题,将透氧层集成到传统的MP-SL系统中,用于在该研究中印刷β-TCP陶瓷浆料。该系统基于氧气通过消耗自由基抑制光聚合过程的事实。研究了光曝光时间和氧浓度对氧抑制层的固化深度和厚度的影响。此外,使用权重传感器间接测定分离力。结果表明,与不使用氧气的相比,氧抑制层有助于将分离力降低60%。固体载荷可以增加54体积%,可印刷的横截面积增加5次。总之,所提出的氧气控制的自下而上MP-SL技术有助于提高陶瓷印刷效率和产品质量。

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